alexbrandmeyer@626
|
1 //
|
alexbrandmeyer@626
|
2 // carfac_test.cc
|
alexbrandmeyer@626
|
3 // CARFAC Open Source C++ Library
|
alexbrandmeyer@626
|
4 //
|
alexbrandmeyer@626
|
5 // Created by Alex Brandmeyer on 5/22/13.
|
alexbrandmeyer@626
|
6 //
|
alexbrandmeyer@626
|
7 // This C++ file is part of an implementation of Lyon's cochlear model:
|
alexbrandmeyer@626
|
8 // "Cascade of Asymmetric Resonators with Fast-Acting Compression"
|
alexbrandmeyer@626
|
9 // to supplement Lyon's upcoming book "Human and Machine Hearing"
|
alexbrandmeyer@626
|
10 //
|
alexbrandmeyer@626
|
11 // Licensed under the Apache License, Version 2.0 (the "License");
|
alexbrandmeyer@626
|
12 // you may not use this file except in compliance with the License.
|
alexbrandmeyer@626
|
13 // You may obtain a copy of the License at
|
alexbrandmeyer@626
|
14 //
|
alexbrandmeyer@626
|
15 // http://www.apache.org/licenses/LICENSE-2.0
|
alexbrandmeyer@626
|
16 //
|
alexbrandmeyer@626
|
17 // Unless required by applicable law or agreed to in writing, software
|
alexbrandmeyer@626
|
18 // distributed under the License is distributed on an "AS IS" BASIS,
|
alexbrandmeyer@626
|
19 // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
|
alexbrandmeyer@626
|
20 // See the License for the specific language governing permissions and
|
alexbrandmeyer@626
|
21 // limitations under the License.
|
alexbrandmeyer@626
|
22
|
alexbrandmeyer@636
|
23 #include <string>
|
alexbrandmeyer@636
|
24 #include <fstream>
|
alexbrandmeyer@640
|
25 #include <vector>
|
ronw@642
|
26
|
ronw@642
|
27 #include "gtest/gtest.h"
|
alexbrandmeyer@640
|
28 #include "car_params.h"
|
alexbrandmeyer@640
|
29 #include "ihc_params.h"
|
alexbrandmeyer@640
|
30 #include "agc_params.h"
|
alexbrandmeyer@636
|
31 #include "carfac.h"
|
alexbrandmeyer@637
|
32
|
alexbrandmeyer@636
|
33 using std::vector;
|
alexbrandmeyer@636
|
34 using std::string;
|
alexbrandmeyer@636
|
35 using std::ifstream;
|
alexbrandmeyer@636
|
36 using std::ofstream;
|
alexbrandmeyer@636
|
37
|
alexbrandmeyer@637
|
38 // This is the 'test_data' subdirectory of aimc/carfac that specifies where to
|
alexbrandmeyer@637
|
39 // locate the text files produced by 'CARFAC_GenerateTestData.m' for comparing
|
alexbrandmeyer@637
|
40 // the ouput of the Matlab version of CARFAC with this C++ version.
|
alexbrandmeyer@637
|
41 static const char* kTestSourceDir= "./test_data/";
|
alexbrandmeyer@636
|
42 // Here we specify the level to which the output should match (7 decimals).
|
alexbrandmeyer@637
|
43 static const float kPrecisionLevel = 1.0e-7;
|
ronw@630
|
44
|
alexbrandmeyer@626
|
45 // Three helper functions are defined here for loading the test data generated
|
alexbrandmeyer@626
|
46 // by the Matlab version of CARFAC.
|
alexbrandmeyer@626
|
47 // This loads one-dimensional FloatArrays from single-column text files.
|
alexbrandmeyer@636
|
48 void WriteNAPOutput(CARFACOutput output, const string filename, int ear) {
|
alexbrandmeyer@637
|
49 string fullfile = kTestSourceDir + filename;
|
alexbrandmeyer@636
|
50 ofstream ofile(fullfile.c_str());
|
alexbrandmeyer@637
|
51 int32_t n_timepoints = output.nap().size();
|
alexbrandmeyer@637
|
52 int channels = output.nap()[0][0].size();
|
alexbrandmeyer@636
|
53 if (ofile.is_open()) {
|
alexbrandmeyer@636
|
54 for (int32_t i = 0; i < n_timepoints; ++i) {
|
alexbrandmeyer@636
|
55 for (int j = 0; j < channels; ++j) {
|
alexbrandmeyer@637
|
56 ofile << output.nap()[i][ear](j);
|
alexbrandmeyer@636
|
57 if ( j < channels - 1) {
|
alexbrandmeyer@636
|
58 ofile << " ";
|
alexbrandmeyer@636
|
59 }
|
alexbrandmeyer@636
|
60 }
|
alexbrandmeyer@636
|
61 ofile << "\n";
|
alexbrandmeyer@636
|
62 }
|
alexbrandmeyer@636
|
63 }
|
alexbrandmeyer@636
|
64 ofile.close();
|
alexbrandmeyer@636
|
65 }
|
alexbrandmeyer@636
|
66
|
alexbrandmeyer@637
|
67 FloatArray LoadTestData(const string filename, const int number_points) {
|
alexbrandmeyer@637
|
68 string fullfile = kTestSourceDir + filename;
|
alexbrandmeyer@636
|
69 ifstream file(fullfile.c_str());
|
alexbrandmeyer@626
|
70 FPType myarray[number_points];
|
alexbrandmeyer@626
|
71 FloatArray output(number_points);
|
alexbrandmeyer@626
|
72 if (file.is_open()) {
|
alexbrandmeyer@626
|
73 for (int i = 0; i < number_points; ++i) {
|
alexbrandmeyer@626
|
74 file >> myarray[i];
|
alexbrandmeyer@626
|
75 output(i) = myarray[i];
|
alexbrandmeyer@626
|
76 }
|
alexbrandmeyer@626
|
77 }
|
alexbrandmeyer@636
|
78 file.close();
|
alexbrandmeyer@626
|
79 return output;
|
alexbrandmeyer@626
|
80 }
|
alexbrandmeyer@626
|
81
|
alexbrandmeyer@636
|
82 // This loads a vector of FloatArrays from multi-column text files.
|
alexbrandmeyer@636
|
83 vector<FloatArray> Load2dTestData(const string filename, const int rows,
|
alexbrandmeyer@626
|
84 const int columns) {
|
alexbrandmeyer@637
|
85 string fullfile = kTestSourceDir + filename;
|
alexbrandmeyer@636
|
86 ifstream file(fullfile.c_str());
|
alexbrandmeyer@626
|
87 FPType myarray[rows][columns];
|
alexbrandmeyer@636
|
88 vector<FloatArray> output;
|
alexbrandmeyer@626
|
89 output.resize(rows);
|
alexbrandmeyer@626
|
90 for (auto& timepoint : output) {
|
alexbrandmeyer@626
|
91 timepoint.resize(columns);
|
alexbrandmeyer@626
|
92 }
|
alexbrandmeyer@626
|
93 if (file.is_open()) {
|
alexbrandmeyer@626
|
94 for (int i = 0; i < rows; ++i) {
|
alexbrandmeyer@626
|
95 for (int j = 0; j < columns; ++j) {
|
alexbrandmeyer@626
|
96 file >> myarray[i][j];
|
alexbrandmeyer@626
|
97 output[i](j) = myarray[i][j];
|
alexbrandmeyer@626
|
98 }
|
alexbrandmeyer@626
|
99 }
|
alexbrandmeyer@626
|
100 }
|
alexbrandmeyer@636
|
101 file.close();
|
alexbrandmeyer@626
|
102 return output;
|
alexbrandmeyer@626
|
103 }
|
alexbrandmeyer@626
|
104
|
alexbrandmeyer@626
|
105 // This loads two dimensional vectors of audio data using data generated in
|
alexbrandmeyer@626
|
106 // Matlab using the wavread() function.
|
alexbrandmeyer@636
|
107 vector<vector<float>> Load2dAudioVector(string filename, int timepoints,
|
alexbrandmeyer@636
|
108 int channels) {
|
alexbrandmeyer@637
|
109 string fullfile = kTestSourceDir + filename;
|
alexbrandmeyer@636
|
110 ifstream file(fullfile.c_str());
|
alexbrandmeyer@636
|
111 vector<vector<float>> output;
|
alexbrandmeyer@626
|
112 output.resize(channels);
|
alexbrandmeyer@626
|
113 for (auto& channel : output) {
|
alexbrandmeyer@626
|
114 channel.resize(timepoints);
|
alexbrandmeyer@626
|
115 }
|
alexbrandmeyer@626
|
116 if (file.is_open()) {
|
alexbrandmeyer@626
|
117 for (int i = 0; i < timepoints; ++i) {
|
alexbrandmeyer@626
|
118 for (int j = 0; j < channels; ++j) {
|
alexbrandmeyer@626
|
119 file >> output[j][i];
|
alexbrandmeyer@626
|
120 }
|
alexbrandmeyer@626
|
121 }
|
alexbrandmeyer@626
|
122 }
|
alexbrandmeyer@636
|
123 file.close();
|
alexbrandmeyer@626
|
124 return output;
|
alexbrandmeyer@626
|
125 }
|
alexbrandmeyer@626
|
126
|
alexbrandmeyer@636
|
127 TEST(CARFACTest, Binaural_Output_test) {
|
alexbrandmeyer@636
|
128 int n_timepoints = 882;
|
alexbrandmeyer@636
|
129 int n_channels = 71;
|
alexbrandmeyer@636
|
130 int n_ears = 2;
|
alexbrandmeyer@637
|
131 string filename = "binaural_test_nap1.txt";
|
alexbrandmeyer@637
|
132 vector<FloatArray> nap1 = Load2dTestData(filename, n_timepoints, n_channels);
|
alexbrandmeyer@636
|
133 filename = "binaural_test_bm1.txt";
|
alexbrandmeyer@637
|
134 vector<FloatArray> bm1 = Load2dTestData(filename, n_timepoints, n_channels);
|
alexbrandmeyer@636
|
135 filename = "binaural_test_nap2.txt";
|
alexbrandmeyer@637
|
136 vector<FloatArray> nap2 = Load2dTestData(filename, n_timepoints, n_channels);
|
alexbrandmeyer@636
|
137 filename = "binaural_test_bm2.txt";
|
alexbrandmeyer@637
|
138 vector<FloatArray> bm2 = Load2dTestData(filename, n_timepoints, n_channels);
|
alexbrandmeyer@636
|
139 filename = "file_signal_binaural_test.txt";
|
alexbrandmeyer@637
|
140 vector<vector<float>> sound_data = Load2dAudioVector(filename, n_timepoints,
|
alexbrandmeyer@637
|
141 n_ears);
|
alexbrandmeyer@626
|
142 CARParams car_params;
|
alexbrandmeyer@636
|
143 IHCParams ihc_params;
|
alexbrandmeyer@636
|
144 AGCParams agc_params;
|
alexbrandmeyer@636
|
145 CARFAC mycf;
|
alexbrandmeyer@636
|
146 mycf.Design(n_ears, 22050, car_params, ihc_params,
|
alexbrandmeyer@636
|
147 agc_params);
|
alexbrandmeyer@636
|
148 CARFACOutput my_output;
|
alexbrandmeyer@636
|
149 my_output.Init(n_ears, true, false, true, false, false);
|
ronw@641
|
150 const bool kOpenLoop = false;
|
ronw@641
|
151 const int length = sound_data[0].size();
|
ronw@641
|
152 mycf.RunSegment(sound_data, 0, length, kOpenLoop, &my_output);
|
alexbrandmeyer@636
|
153 filename = "cpp_nap_output_1_binaural_test.txt";
|
alexbrandmeyer@636
|
154 WriteNAPOutput(my_output, filename, 0);
|
alexbrandmeyer@636
|
155 filename = "cpp_nap_output_2_binaural_test.txt";
|
alexbrandmeyer@636
|
156 WriteNAPOutput(my_output, filename, 1);
|
alexbrandmeyer@636
|
157 int ear = 0;
|
alexbrandmeyer@636
|
158 int n_ch = 71;
|
alexbrandmeyer@636
|
159 for (int timepoint = 0; timepoint < n_timepoints; ++timepoint) {
|
alexbrandmeyer@636
|
160 for (int channel = 0; channel < n_ch; ++channel) {
|
alexbrandmeyer@637
|
161 FPType cplusplus = my_output.nap()[timepoint][ear](channel);
|
alexbrandmeyer@636
|
162 FPType matlab = nap1[timepoint](channel);
|
alexbrandmeyer@637
|
163 ASSERT_NEAR(cplusplus, matlab, kPrecisionLevel);
|
alexbrandmeyer@637
|
164 cplusplus = my_output.bm()[timepoint][ear](channel);
|
alexbrandmeyer@636
|
165 matlab = bm1[timepoint](channel);
|
alexbrandmeyer@637
|
166 ASSERT_NEAR(cplusplus, matlab, kPrecisionLevel);
|
alexbrandmeyer@636
|
167 }
|
alexbrandmeyer@626
|
168 }
|
alexbrandmeyer@636
|
169 ear = 1;
|
alexbrandmeyer@636
|
170 for (int timepoint = 0; timepoint < n_timepoints; ++timepoint) {
|
alexbrandmeyer@636
|
171 for (int channel = 0; channel < n_ch; ++channel) {
|
alexbrandmeyer@637
|
172 FPType cplusplus = my_output.nap()[timepoint][ear](channel);
|
alexbrandmeyer@636
|
173 FPType matlab = nap2[timepoint](channel);
|
alexbrandmeyer@637
|
174 ASSERT_NEAR(cplusplus, matlab, kPrecisionLevel);
|
alexbrandmeyer@637
|
175 cplusplus = my_output.bm()[timepoint][ear](channel);
|
alexbrandmeyer@636
|
176 matlab = bm2[timepoint](channel);
|
alexbrandmeyer@637
|
177 ASSERT_NEAR(cplusplus, matlab, kPrecisionLevel);
|
alexbrandmeyer@626
|
178 }
|
alexbrandmeyer@626
|
179 }
|
alexbrandmeyer@626
|
180 }
|
alexbrandmeyer@626
|
181
|
alexbrandmeyer@636
|
182 TEST(CARFACTest, Long_Output_test) {
|
alexbrandmeyer@636
|
183 int n_timepoints = 2000;
|
alexbrandmeyer@636
|
184 int n_channels = 83;
|
alexbrandmeyer@636
|
185 int n_ears = 2;
|
alexbrandmeyer@636
|
186 string filename = "long_test_nap1.txt";
|
alexbrandmeyer@637
|
187 vector<FloatArray> nap1 = Load2dTestData(filename, n_timepoints, n_channels);
|
alexbrandmeyer@636
|
188 filename = "long_test_bm1.txt";
|
alexbrandmeyer@637
|
189 vector<FloatArray> bm1 = Load2dTestData(filename, n_timepoints, n_channels);
|
alexbrandmeyer@636
|
190 filename = "long_test_nap2.txt";
|
alexbrandmeyer@637
|
191 vector<FloatArray> nap2 = Load2dTestData(filename, n_timepoints, n_channels);
|
alexbrandmeyer@636
|
192 filename = "long_test_bm2.txt";
|
alexbrandmeyer@637
|
193 vector<FloatArray> bm2 = Load2dTestData(filename, n_timepoints, n_channels);
|
alexbrandmeyer@636
|
194 filename = "file_signal_long_test.txt";
|
alexbrandmeyer@637
|
195 vector<vector<float>> sound_data = Load2dAudioVector(filename, n_timepoints,
|
alexbrandmeyer@637
|
196 n_ears);
|
alexbrandmeyer@626
|
197 CARParams car_params;
|
alexbrandmeyer@626
|
198 IHCParams ihc_params;
|
alexbrandmeyer@626
|
199 AGCParams agc_params;
|
alexbrandmeyer@636
|
200 CARFAC mycf;
|
alexbrandmeyer@636
|
201 mycf.Design(n_ears, 44100, car_params, ihc_params,
|
alexbrandmeyer@636
|
202 agc_params);
|
alexbrandmeyer@636
|
203 CARFACOutput my_output;
|
alexbrandmeyer@636
|
204 my_output.Init(n_ears, true, false, true, false, false);
|
ronw@641
|
205 const bool kOpenLoop = false;
|
ronw@641
|
206 const int length = sound_data[0].size();
|
ronw@641
|
207 mycf.RunSegment(sound_data, 0, length, kOpenLoop, &my_output);
|
alexbrandmeyer@636
|
208 filename = "cpp_nap_output_1_long_test.txt";
|
alexbrandmeyer@636
|
209 WriteNAPOutput(my_output, filename, 0);
|
alexbrandmeyer@636
|
210 filename = "cpp_nap_output_2_long_test.txt";
|
alexbrandmeyer@636
|
211 WriteNAPOutput(my_output, filename, 1);
|
alexbrandmeyer@636
|
212 int ear = 0;
|
alexbrandmeyer@636
|
213 for (int timepoint = 0; timepoint < n_timepoints; ++timepoint) {
|
alexbrandmeyer@636
|
214 for (int channel = 0; channel < n_channels; ++channel) {
|
alexbrandmeyer@637
|
215 FPType cplusplus = my_output.nap()[timepoint][ear](channel);
|
alexbrandmeyer@636
|
216 FPType matlab = nap1[timepoint](channel);
|
alexbrandmeyer@637
|
217 ASSERT_NEAR(cplusplus, matlab, kPrecisionLevel);
|
alexbrandmeyer@637
|
218 cplusplus = my_output.bm()[timepoint][ear](channel);
|
alexbrandmeyer@636
|
219 matlab = bm1[timepoint](channel);
|
alexbrandmeyer@637
|
220 ASSERT_NEAR(cplusplus, matlab, kPrecisionLevel);
|
alexbrandmeyer@636
|
221 }
|
alexbrandmeyer@626
|
222 }
|
alexbrandmeyer@636
|
223 ear = 1;
|
alexbrandmeyer@636
|
224 for (int timepoint = 0; timepoint < n_timepoints; ++timepoint) {
|
alexbrandmeyer@636
|
225 for (int channel = 0; channel < n_channels; ++channel) {
|
alexbrandmeyer@637
|
226 FPType cplusplus = my_output.nap()[timepoint][ear](channel);
|
alexbrandmeyer@636
|
227 FPType matlab = nap2[timepoint](channel);
|
alexbrandmeyer@637
|
228 ASSERT_NEAR(cplusplus, matlab, kPrecisionLevel);
|
alexbrandmeyer@637
|
229 cplusplus = my_output.bm()[timepoint][ear](channel);
|
alexbrandmeyer@636
|
230 matlab = bm2[timepoint](channel);
|
alexbrandmeyer@637
|
231 ASSERT_NEAR(cplusplus, matlab, kPrecisionLevel);
|
alexbrandmeyer@626
|
232 }
|
alexbrandmeyer@626
|
233 }
|
ronw@641
|
234 }
|